[1] | Parola M,, Pinzani M. Liver fibrosis: pathophysiology, pathogenetic targets and clinical issues[J]. Mol Aspects Med, 2019, 65: 37-55. | [2] | Niu FQ,, Chong SG,, Qin MQ, et al. Mechanism of fibrosis induced by Echinococcus spp.[J]. Diseases, 2019, 7(3): 51. | [3] | Tsuchida T,, Friedman SL. Mechanisms of hepatic stellate cell activation[J]. Nat Rev Gastroenterol Hepatol, 2017, 14(7):397-411. | [4] | Rygiel KA,, Robertson H,, Marshall HL, et al. Epithelial-mesenchymal transition contributes to portal tract fibrogenesis during human chronic liver disease[J]. Lab Investig, 2008, 88(2): 112-123. | [5] | Friedman SL. Hepatic stellate cells: protean, multifunctional, and enigmatic cells of the liver[J]. Physiol Rev, 2008, 88(1): 125-172. | [6] | Kisseleva T,, Cong M,, Paik Y, et al. Myofibroblasts revert to an inactive phenotype during regression of liver fibrosis[J]. Proc Natl Acad Sci USA, 2012, 109(24): 9448-9453. | [7] | Zhang DY,, Goossens N,, Guo JS, et al. A hepatic stellate cell gene expression signature associated with outcomes in hepatitis C cirrhosis and hepatocellular carcinoma after curative resection[J]. Gut, 2016, 65(10): 1754-1764. | [8] | Puche JE,, Saiman Y,, Friedman SL. Hepatic stellate cells and liver fibrosis[J]. Compr Physiol, 2013, 3(4): 1473-1492. | [9] | Li TX,, Shi ZD,, Rockey DC. Preproendothelin-1 expression is negatively regulated by IFN-γ during hepatic stellate cell activation[J]. Am J Physiol Gastrointest Liver Physiol, 2012, 302(9): G948-G957. | [10] | Shi ML. Effects of Echinococcus multilocularis cyst fluid on prolifcration and apoptosis of rat hepatic stellate cell[D]. Xining: Qinghai University, 2014: 46. (in Chinese) | [10] | ( 石明亮. 泡球蚴囊液对大鼠肝星状细胞增殖和凋亡影响[D]. 西宁: 青海大学, 2014: 46.) | [11] | Ren L,, Wang ZX,, Liu ZS, et al. Effect of Echinococcus cyst fluid on proliferation and cell cycle progression of rat hepatic stellate cell[J]. Chin J Bases Clin Gen Surg, 2016, 23(5): 517-520. (in Chinese) | [11] | ( 任利,, 王志鑫,, 刘志胜, 等. 泡球蚴囊液对大鼠肝脏星状细胞增殖的影响[J]. 中国普外基础与临床杂志, 2016, 23(5): 517-520.) | [12] | Wang LM. Crosstalk between miR-19b and TGF-βl signaling of hepatic stellate cell proliferaiton[D]. Urumqi: Xinjiang University, 2014: 82. (in Chinese) | [12] | ( 王丽敏. miR-19b与TGF-β1交互作用对肝星状细胞增殖影响机制研究[D]. 乌鲁木齐: 新疆大学, 2014: 82.) | [13] | Boon MR,, van der Horst G,, van der Pluijm G, et al. Bone morphogenetic protein 7: a broad-spectrum growth factor with multiple target therapeutic potency[J]. Cytokine Growth Factor Rev, 2011, 22(4): 221-229. | [14] | Hellerbrand C,, Stefanovic B,, Giordano F, et al. The role of TGFβ1 in initiating hepatic stellate cell activation in vivo[J]. J Hepatol, 1999, 30(1): 77-87. | [15] | Drabsch Y,, Dijke PT. TGF-β signalling and its role in cancer progression and metastasis[J]. Cancer Metastasis Rev, 2012, 31(3): 553-568. | [16] | Dudás J,, Kovalszky I,, Gallai M, et al. Expression of decorin, transforming growth factor-beta1, tissue inhibitor metalloproteinase 1 and 2, and type IV collagenases in chronic hepatitis[J]. Am J Clin Pathol, 2001, 115(5): 725-735. | [17] | Liu YM,, Abudounnasier G,, Zhang TC, et al. Increased expression of TGF-β1 in correlation with liver fibrosis during Echinococcus granulosus infection in mice[J]. Korean J Parasitol, 2016, 54(4): 519-525. | [18] | Wu XW,, Chen XL,, Peng XY, et al. The special expressions of TGF-β1 and TNF-α in the pericystic layer of hepatic hydatid cyst[J]. Chin J Endem, 2004, 23(4): 311-313. (in Chinese) | [18] | ( 吴向未,, 陈雪玲,, 彭心宇, 等. TGF-β1、TNF-α mRNA在肝包虫囊肿周围人体纤维囊壁中的特异性分层表达[J]. 中国地方病学杂志, 2004, 23(4): 311-313.) | [19] | Hedger MP,, de Kretser DM. The activins and their binding protein, follistatin: diagnostic and therapeutic targets in inflammatory disease and fibrosis[J]. Cytokine Growth Factor Rev, 2013, 24(3): 285-295. | [20] | Masszi A,, Kapus A. Smaddening complexity: the role of Smad3 in epithelial-myofibroblast transition[J]. Cells Tissues Organs, 2011, 193(1/2): 41-52. | [21] | Wang JH,, Zhang CS,, Wei XF, et al. TGF-β and TGF-β/Smad signaling in the interactions between Echinococcus multilocularis and its hosts[J]. PLoS One, 2013, 8(2): e55379. | [22] | Wei XF,, Shao YM,, Wang JH, et al. The expression and significance of TGF-β1, TβRⅠ, and p-Smad2/3 during the middle stages of infection in BALB/c mice infected with Echinococcus multilocularis[J]. J Pathog Biol, 2010, 5(12): 895-897, 900, 876. (in Chinese) | [22] | ( 魏绪法,, 邵英梅,, 王俊华, 等. 泡球蚴感染中期小鼠肝脏病灶周围肉芽肿TGF-β1及其受体TβRⅠ和p-Smad2/3的表达及意义[J]. 中国病原生物学杂志, 2010, 5(12): 895-897, 900, 876.) | [23] | Shen DF,, Yang YW,, Zhu HH. Effects of Smad2, Smad5 and Smad7 proteins on fibrosis progression of vesicular hepatic echinococcosis[J]. Chin J Exp Surg, 2022(2): 269-272. (in Chinese) | [23] | ( 申东方,, 杨育文,, 朱海宏. Smad2、Smad5、Smad7蛋白对泡型肝包虫病纤维化进程的影响[J]. 中华实验外科杂志, 2022(2): 269-272.) | [24] | Hanafusa H,, Ninomiya-Tsuji J,, Masuyama N, et al. Involvement of the p38 mitogen-activated protein kinase pathway in transforming growth factor-β-induced gene expression[J]. J Biol Chem, 1999, 274(38): 27161-27167. | [25] | Engel ME,, McDonnell MA,, Law BK, et al. Interdependent SMAD and JNK signaling in transforming growth factor-β-mediated transcription[J]. J Biol Chem, 1999, 274(52): 37413-37420. | [26] | Ren B. Effect of Echinococcus multilocularis vesicle fluid (EmF) on mitogen activated protein kinase (MAPK) in the hepatic stellate cell of rats[D]. Xining: Qinghai University, 2014: 35. (in Chinese) | [26] | ( 任宾. 泡球蚴囊液对大鼠肝星状细胞MAPK信号通路影响的初步研究[D]. 西宁: 青海大学, 2014: 35.) | [27] | Cao T. Expression and significance of p38MAPK, BMP7 and TGF-β1 protein in hepatic alveolar echinococcosis[D]. Xining: Qinghai University, 2021: 44. (in Chinese) | [27] | ( 曹涛. p38MAPK、BMP7、TGF-β1蛋白在肝多房棘球蚴病组织中的表达及意义[D]. 西宁: 青海大学, 2021: 44.) | [28] | Li ZW,, Dong JH,, Wang HJ, et al. Expression and significance of Smad2 and P38MAPK in hepatic tissues next to Echinococcus multilocularis[J]. Chin J Zoonoses, 2016, 32(3): 246-250, 255. (in Chinese) | [28] | ( 李振伟,, 董家鸿,, 王海久, 等. Smad2及P38MAPK在泡球蚴病灶旁肝脏组织中的表达及意义[J]. 中国人兽共患病学报, 2016, 32(3): 246-250, 255.) | [29] | Zhang PQ,, Liu N,, Wang LY. BMP-/Smads/TGF-β1 signaling pathway and renal interstitial fibrosis[J]. Med Recapitul, 2008, 14(1): 13-15. (in Chinese) | [29] | ( 张佩青,, 刘娜,, 王丽彦. BMP-7/Smads/TGF-β1信号转导通路与肾间质纤维化[J]. 医学综述, 2008, 14(1): 13-15.) | [30] | Yuan B,, Wu ZM. MMP-2 silencing reduces the osteogenic transformation of fibroblasts by inhibiting the activation of the BMP/Smad pathway in ankylosing spondylitis[J]. Oncol Lett, 2018, 15(3): 3281-3286. | [31] | Li D. Expression and significance P38, TGF-β1 and BMP-7 in liver fibrosis caused by hepatic alveolar echinococcosis[D]. Xining: Qinghai University, 2020: 43. (in Chinese) | [31] | ( 李栋. P38、TGF-β1、BMP-7在泡型肝包虫病纤维化中的基因表达及意义[D]. 西宁: 青海大学, 2020: 43.) | [32] | Yoshiji H,, Kuriyama S,, Yoshii J, et al. Vascular endothelial growth factor and receptor interaction is a prerequisite for murine hepatic fibrogenesis[J]. Gut, 2003, 52(9): 1347-1354. | [33] | Yang L,, Kwon J,, Popov Y, et al. Vascular endothelial growth factor promotes fibrosis resolution and repair in mice[J]. Gastroenterology, 2014, 146(5): 1339-1350. | [34] | Kantari-Mimoun C,, Castells M,, Klose R, et al. Resolution of liver fibrosis requires myeloid cell-driven sinusoidal angiogenesis[J]. Hepatology, 2015, 61(6): 2042-2055. | [35] | Li Q. Expressions of vascular endothelial growth factor, microvessel density-CD34 in hepatic alveolar hydatid tissue in gerbil model[D]. Shihezi: Shihezi University, 2016: 51. (in Chinese) | [35] | ( 李琪. 接种泡状棘球蚴沙鼠体内血清及组织中VEGF、CD34的表达[D]. 石河子: 石河子大学, 2016: 51.) | [36] | Borkham-Kamphorst E,, Ostendorf T, et al. Pro-fibrogenic potential of PDGF-D in liver fibrosis[J]. J Hepatol, 2007, 46(6): 1064-1074. | [37] | Chen XL,, Wu XW,, Peng XY, et al. Delaminated expressions of PDGF and TNF-α in the pericystic tissues of hepatic hydatid cysts[J]. Curr Immunol, 2004, 24(3): 207-209. (in Chinese) | [37] | ( 陈雪玲,, 吴向未,, 彭心宇,, 等. PDGF、 TNF-α在人肝细粒棘球蚴囊壁周围组织的分层表达[J]. 现代免疫学, 2004, 24(3): 207-209.) | [38] | Huang GC,, Brigstock DR. Regulation of hepatic stellate cells by connective tissue growth factor[J]. Front Biosci (Landmark Ed), 2012, 17(7): 2495-2507. | [39] | Liu Y,, Liu H,, Meyer C, et al. Transforming growth factor-β (TGF-β)-mediated connective tissue growth factor (CTGF) expression in hepatic stellate cells requires Stat3 signaling activation[J]. J Biol Chem, 2013, 288(42): 30708-30719. | [40] | Jiang T. Expression and significance of CTGF in the pericystic layers of hepatic hydatid cyst[D]. Shihezi: Shihezi University, 2007: 47. (in Chinese) | [40] | ( 姜涛. CTGF在肝包虫囊壁及周围肝组织中的表达与意义[D]. 石河子: 石河子大学, 2007: 47.) | [41] | Luedde T,, Schwabe RF. NF-κB in the liver: linking injury, fibrosis and hepatocellular carcinoma[J]. Nat Rev Gastroenterol Hepatol, 2011, 8(2): 108-118. | [42] | Seki E,, de Minicis S,, Österreicher CH, et al. TLR4 enhances TGF-β signaling and hepatic fibrosis[J]. Nat Med, 2007, 13(11): 1324-1332. | [43] | Ma WM,, Sang W,, AIMAITI YS, et al. Roles of nuclear factor-κB/myeloid differentiation factor 88 in the liver fibrosis of cystic echinococcosis patients[J]. Chin J Parasitol Parasit Dis, 2021, 39(6): 779-784. (in Chinese) | [43] | ( 马文梅,, 桑伟,, 艾麦提·牙森, 等. 核因子-κB/髓样分化分子88在细粒棘球蚴病患者肝纤维化中的作用[J]. 中国寄生虫学与寄生虫病杂志, 2021, 39(6): 779-784.) | [44] | Bi XJ. miR-133a effect study on Echinococcus multilocularis induced hepatic stellate cell activation in vitro and liver fibrosis in infected mice in vivo[D]. Urumqi: Xinjiang Medical University, 2016: 59. (in Chinese) | [44] | ( 毕晓娟. miRNA-133a在泡球蚴感染所致肝星状细胞活化中作用及与肝纤维化的关系[D]. 乌鲁木齐: 新疆医科大学, 2016: 59.) | [45] | Ye JW,, Liu H,, Lv GD, et al. The expression of miR-106b-25 microRNA cluster in the liver of mice with Echinococcus multilocularis infected[J]. J Clin Exp Med, 2016, 15(23): 2296-2300. (in Chinese) | [45] | ( 叶建蔚,, 刘辉,, 吕国栋, 等. miR-106b-25基因簇在小鼠肝泡型包虫病中的表达[J]. 临床和实验医学杂志, 2016, 15(23): 2296-2300.) | [46] | Qin BD. Screening of microRNA expression profile in the primary biliary cirrhosis and study on its function[D]. Shanghai: Second Military Medical University, 2013: 66. (in Chinese) | [46] | ( 秦保东. 原发性胆汁性肝硬化microRNA表达谱的检测及其功能研究[D]. 上海: 第二军医大学, 2013: 66.) | [47] | Zhang C,, Wang L,, Ali T, et al. Hydatid cyst fluid promotes peri-cystic fibrosis in cystic echinococcosis by suppressing miR-19 expression[J]. Parasit Vectors, 2016, 9(1): 278. | [48] | Zhang X,, Gong W,, Cao S, et al. Comprehensive analysis of non-coding RNA profiles of exosome-like vesicles from the protoscoleces and hydatid cyst fluid of Echinococcus granulosus[J]. Front Cell Infect Microbiol, 2020, 10: 316. | [49] | Shen ZF,, Xu XS,, Sun JL. Regulation mechanism of miR-125b to cardiac fibroblasts after myocardial infarction[J]. Chin J Evid Based Cardiovasc Med, 2018, 10(7): 853-856, 860. (in Chinese) | [49] | ( 沈志方,, 许学升,, 孙继兰. miR-125b对心肌梗死后成纤维细胞的调控机制研究[J]. 中国循证心血管医学杂志, 2018, 10(7): 853-856, 860.) | [50] | Bakhti K. Identification of expression profile of circular RNA in the outer capsule of hepatic hydatid and its preliminary mechanism[D]. Urumqi: Xinjiang Medical University, 2021: 120.(in Chinese) | [50] | 巴合提·卡力甫. 环状RNA在肝包虫外囊组织中表达谱鉴定及初步机制研究[D]. 乌鲁木齐: 新疆医科大学, 2021: 120.) |
|